ArticleFASEB journal : official publication of the Federation of American Societies for Experimental Biology2026
Investigating Dietary microRNA Stability and Function Using a Transgenic Milk Model With Unique microRNA Sequences.
Article in FASEB journal : official publication of the Federation of American Societies for Experimental Biology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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4 authors.
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Abstract
Milk microRNAs are believed to have regulatory functions in the consumer's cells. Milk from different species is enriched in microRNAs predicted to influence immunity, metabolism, and intestinal homeostasis. For milk microRNAs to regulate gene expression in the consumer, they must survive digestion and be present at sufficient levels to influence intestinal cells and potentially beyond intestinal cells. Milk microRNAs are proposed to be protected from degradation through their association with milk extracellular vesicles (EVs), which might also deliver them to cells. Studies on milk microRNA oral transfer and tissue bioavailability are limited by interspecies sequence homology, making it difficult to distinguish endogenous from exogenous microRNAs. Here, we used a transgenic (TG) cow model expressing four unique microRNA sequences (AmiRs) in its milk to study their association with milk EVs, their resistance to in vitro digestion, and AmiR uptake and regulatory activity in vitro. We confirmed the presence of the four milk EV populations in raw wild-type (WT) and TG cow milk, similar to those previously reported in commercial (pasteurized) cow milk, and confirmed their association with AmiRs and classical milk microRNAs. AmiRs showed differential resistance to simulated adult digestion. No statistically significant regulatory effect of AmiRs was observed in Caco-2 cells exposed to TG milk EVs, suggesting absent or non-functional cellular uptake. The intent of using this model was to perform in vitro analysis to lay the groundwork for later in vivo bioavailability studies, taking advantage of the uniqueness of the AmiR sequences and bypassing the limitation of microRNA sequence homology.
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